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首页> 外文期刊>Journal of the European Ceramic Society >Pseudo-ductile fracture of 3D printed alumina triply periodic minimal surface structures
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Pseudo-ductile fracture of 3D printed alumina triply periodic minimal surface structures

机译:3D印刷氧化铝的假延性骨折三个周期性最小表面结构

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Additive manufacturing enables the fabrication of periodic ceramic lattices with controllable micro-architectures. Many studies reported their catastrophic brittle fracture behaviour. However, ceramic lattices may fail by a layer-by-layer pseudo-ductile fracture mode, by controlling micro-architectures and porosities. Moreover, their fracture behaviour can be optimised by introducing strut/wall thickness gradients. This paper investigates the fracture behaviour and the fracture mode transition of ceramic triply periodic minimal surface (TPMS) structures. Alumina TPMS structures with relative densities of 0.14-0.37 are fabricated by ceramic stereolithography. Quasi-static compression tests validate a transition density range for non-graded samples: low ( < 0.21) and moderate ( > 0.25) relative density samples show layer-by-layer pseudo-ductile and catastrophic brittle fracture modes, respectively. The pseudo-ductile failure mode increases the energy absorption performance, enabling load-bearing capacity for a compressive strain up to 50%. With appropriate thickness gradients, graded structures exhibit significant increase of energy absorption without a decrease of fracture strength compared to their non-graded counterparts.
机译:添加剂制造能够用可控微架构制造周期性陶瓷格子。许多研究报告了他们灾难性的脆性骨折行为。然而,通过控制微架构和孔隙率,陶瓷晶格可以通过层逐层伪延性裂缝模式。此外,它们的断裂行为可以通过引入支柱/壁厚梯度来优化。本文研究了陶瓷三个周期性最小表面(TPMS)结构的裂缝行为和裂缝模式转变。氧化铝TPMS结构具有0.14-0.37的相对密度,由陶瓷立体镀层制造。准静态压缩试验验证非梯度样品的过渡密度范围:低(<0.21)和中等(> 0.25)相对密度样品分别显示逐层伪延展性和灾难性的脆性骨折模式。伪延展性故障模式提高了能量吸收性能,使压缩应变能力高达50%的承载能力。通过适当的厚度梯度,与其非渐变对应物相比,梯度结构表现出显着增加的能量吸收而不会降低断裂强度。

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